Source Journal of CSCD
Source Journal for Chinese Scientific and Technical Papers
Core Journal of RCCSE
Included in JST China
Volume 42 Issue 5
May  2024
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SHEN Yaohui, KANG Caixia, WU Mingwei, LIU Yurun, TONG Zhengong, WANG Liyuan. SPATIAL-TEMPORAL DISTRIBUTION CHARACTERISTICS AND INFLUENCING FACTORS OF CONVERTIBLE NITROGEN IN SURFACE SEDIMENTS OF THE POYANG LAKE[J]. ENVIRONMENTAL ENGINEERING , 2024, 42(5): 18-27. doi: 10.13205/j.hjgc.202405003
Citation: SHEN Yaohui, KANG Caixia, WU Mingwei, LIU Yurun, TONG Zhengong, WANG Liyuan. SPATIAL-TEMPORAL DISTRIBUTION CHARACTERISTICS AND INFLUENCING FACTORS OF CONVERTIBLE NITROGEN IN SURFACE SEDIMENTS OF THE POYANG LAKE[J]. ENVIRONMENTAL ENGINEERING , 2024, 42(5): 18-27. doi: 10.13205/j.hjgc.202405003

SPATIAL-TEMPORAL DISTRIBUTION CHARACTERISTICS AND INFLUENCING FACTORS OF CONVERTIBLE NITROGEN IN SURFACE SEDIMENTS OF THE POYANG LAKE

doi: 10.13205/j.hjgc.202405003
  • Received Date: 2023-06-03
    Available Online: 2024-07-11
  • To study the distribution of nitrogen forms in sediments of the Poyang Lake, this paper divided Poyang Lake into three parts: the northern lake area, the central lake area, and the river inflow area. The overlying water and sediments were collected from different regions during the wet season, normal water period, and dry season. The ion exchangeable nitrogen (IEF-N), weak acid extractable nitrogen (WAEF-N), strong alkali extractable nitrogen (SAEF-N), and strong oxidant extractable nitrogen (SOEF-N) in sediments were extracted by graded leaching method, and the correlation between various forms of convertible nitrogen in sediments and physical and chemical properties of sediments was analyzed. The results showed that the TN content of sediments was 2.05 to 8.91 g/kg in the wet season, 1885.71 to 4727.27 mg/kg in the normal season, and 480.79 to 3933.00 mg/kg in the dry season, which was the highest in the wet season. The contents of four kinds of convertible nitrogen in sediments were significantly different in different periods; and the content of SOEF-N was the highest in the three periods, inferring SOEF-N was the main species of convertible nitrogen. Spatially, the TN content of the Poyang Lake sediments was in the sequence of the river inflow area>the northern lake area>the central lake area; the spatial distribution of convertible nitrogen content in sediments was related to the water level, and the spatial distribution of four kinds of convertible nitrogen content varied greatly in different periods. The contents of various forms of nitrogen in sediments had a great correlation with the physical and chemical properties of sediments, and were mainly affected by climate and environment.
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  • [1]
    周天宇, 李浩帅, 简慧敏, 等. 长江口及邻近海域表层沉积物中氮形态的研究[J]. 海洋环境科学, 2018,37(2):281-286.
    [2]
    KEMP A, MUDROCHOVA A. Distribution and forms of nitrogen in a Lake ontario sediment core[J]. Limnology Oceanography, 1972,17(6):855-867.
    [3]
    SLOTHN P, NIELSEN LARS P, HENRY BLACKBURN T, et al. Nitrification in sediment cores measured with acetylene inhibition[J]. Limnology Oceanography, 1992,37(5):1108-1112.
    [4]
    NICHOLS D S, KEENEY D R. Nitrogen nutrition of Myriophyllum spicatum: variation of plant tissue nitrogen concentration with season and site in Lake Wingra[J]. Freshwater Biology, 1976,6(2):137-144.
    [5]
    GARDNER W S, YANG L Y, COTNER J B, et al. Nitrogen dynamics in sandy freshwater sediments (Saginaw Bay, Lake Huron)[J]. Journal of Great Lakes Research, 2001,27(1):84-97.
    [6]
    马红波, 宋金明, 吕晓霞, 等. 渤海沉积物中氮的形态及其在循环中的作用[J]. 地球化学, 2003,32(1):48-54.
    [7]
    吕晓霞, 宋金明, 袁华茂, 等. 南黄海表层沉积物中氮的潜在生态学功能[J]. 生态学报, 2004,24(8):1635-1642.
    [8]
    ZHENG G X, SONG J M, SUN Y M, et al. Characteristics of nitrogen forms in the surface sediments of southwestern Nansha Trough, South China Sea[J]. 中国海洋湖沼学报(英文版), 2008,26(3):280-288.
    [9]
    王圣瑞, 金相灿, 焦立新. 不同污染程度湖泊沉积物中不同粒级可转化态氮分布[J]. 环境科学研究, 2007,20(3):52-57.
    [10]
    王禄仕, 柴蓓蓓, 刘虹. 水源水库沉积物中氮的形态分布特征研究[J]. 西安建筑科技大学学报(自然科学版), 2010,42(5):734-740.
    [11]
    张雷, 秦延文, 郑丙辉, 等. 三峡入库河流大宁河回水区浸没土壤及消落带土壤氮形态及分布特征[J]. 环境科学, 2009,30(10):2884-2890.
    [12]
    钟立香, 王书航, 姜霞, 等. 连续分级提取法研究春季巢湖沉积物中不同结合态氮的赋存特征[J]. 农业环境科学学报, 2009,28(10):2132-2137.
    [13]
    钱君龙, 张连弟. 过硫酸盐消化法测定土壤全氮全磷[J]. 土壤, 1990,22(5):258-262.
    [14]
    王圣瑞, 金相灿, 焦立新. 不同污染程度湖泊沉积物中不同粒级可转化态氮分布[J]. 环境科学研究, 2007,20(3):52-57.
    [15]
    国家环境保护总局. 水和废水监测分析方法[M].4版. 北京: 中国环境出版社, 2002.
    [16]
    PETROVIC A, FUENTES M A, KHANNA P, et al. Holocene sediment distribution in the Al Wajh platform lagoon (northern Red Sea, Saudi Arabia), a modern analogue for large rift basin carbonate platforms[J]. Sedimentology, 2022,69(3):1365-1398.
    [17]
    沈洪艳,张绵绵,倪兆奎,等.鄱阳湖沉积物可转化态氮分布特征及其对江湖关系变化的响应[J].环境科学,2015,36(1):87-93.
    [18]
    刘欢,孔维苇,王晓锋,等.重庆梁滩河表层沉积物氮形态时空特征及影响因素[J].水土保持学报,2019,33(6):332-341.
    [19]
    张硕,王功芹,朱珠,等.海州湾表层沉积物中不同形态氮季节性赋存特征[J].生态环境学报,2015,24(8):1336-1341.
    [20]
    何宗健, 吴志强, 倪兆奎, 等. 江湖关系变化对鄱阳湖沉积物氨氮释放风险的影响[J]. 中国环境科学, 2014,34(5):1277-1284.
    [21]
    庞巧珠, 骆丽珍, 曾广锐, 等. 黎安港海水和沉积物中叶绿素a含量及与环境因子的关系分析[J]. 海洋湖沼通报, 2021(1):133-141.
    [22]
    李震. 环渤海海域表层沉积物氮赋存形态及释放潜力研究[D]. 上海:上海海洋大学, 2022.
    [23]
    赵宝刚, 张夏彬, 昝逢宇, 等. 洪泽湖表层沉积物氮形态分布及影响因素[J]. 环境科学与技术, 2020,43(6):30-38.
    [24]
    梁子豪, 罗建中, 王慧娴, 等. 珠江涌表层沉积物中不同形态氮的赋存特征[J]. 环境污染与防治, 2019,41(1):101-105.
    [25]
    赵宝刚, 张夏彬, 昝逢宇, 等. 不同湖泊表层沉积物氮形态的分布特征与影响因素[J]. 中国环境科学, 2021,41(2):837-847.
    [26]
    周美玲, 张鉴达, 杨小雨, 等. 昌黎黄金海岸自然保护区海域表层沉积物中氮赋存形态分布特征[J]. 海洋环境科学, 2018,37(5):691-698.
    [27]
    万金保,闫伟伟.鄱阳湖水质富营养化评价方法应用及探讨[J].江西师范大学学报(自然科学版),2007,31(2):210-214.
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